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दो-नमूना कोल्मोगोरोव-स्मिरनोव परीक्षण×विविधताओं की समानता के लिए लेवेन और ब्राउन-फोर्थे परीक्षण×क्रमचय (यादृच्छिकीकरण) परीक्षण×
क्षेत्रसांख्यिकीसांख्यिकीसांख्यिकी
परिवारRegression modelRegression modelRegression model
उद्भव वर्ष194819602005
प्रवर्तकN. V. SmirnovHoward Levene; Morton B. Brown and Alan B. ForsytheGood (2005); Edgington & Onghena (2007); resampling tradition
प्रकारNonparametric two-sample distribution testHomogeneity of variance test (robust)Nonparametric resampling test
मौलिक स्रोतSmirnov, N. V. (1948). Table for Estimating the Goodness of Fit of Empirical Distributions. Annals of Mathematical Statistics, 19(2), 279-281. DOI ↗Levene, H. (1960). Robust Tests for Equality of Variances. In Contributions to Probability and Statistics: Essays in Honor of Harold Hotelling. Stanford University Press. link ↗Good, P. (2005). Permutation, Parametric and Bootstrap Tests of Hypotheses (3rd ed.). Springer. ISBN: 978-0387202792
उपनामKS two-sample test, two-sample KS test, İki Örneklem Kolmogorov-Smirnov TestiLevene test, Brown-Forsythe test, homogeneity of variance test, Levene ve Brown-Forsythe Varyans Testirandomization test, exact permutation test, re-randomization test, Permütasyon Testi
संबंधित355
सारांशThe two-sample Kolmogorov-Smirnov test is a nonparametric procedure that asks whether two independent groups are drawn from the same continuous distribution. Building on Smirnov's 1948 tables, it compares the empirical cumulative distribution functions (CDFs) of the two samples and uses their maximum absolute distance as the test statistic.The Levene and Brown-Forsythe test checks whether two or more groups share the same variance (homogeneity of variance). Levene (1960) built the test on absolute deviations from each group mean, and Brown and Forsythe (1974) made it robust to non-normal data by centring on the group median instead.The permutation test is a nonparametric resampling procedure that builds the sampling distribution of a test statistic directly from the data by repeatedly shuffling the group labels. Developed in the resampling tradition and treated systematically by Good (2005) and Edgington & Onghena (2007), it requires no parametric distributional assumption and yields an exact p-value.
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